Cargando…

Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue

Prolidase is the only human enzyme responsible for the digestion of iminodipeptides containing proline or hydroxyproline at their C-terminal end, being a key player in extracellular matrix remodeling. Prolidase deficiency (PD) is an intractable loss of function disease, characterized by mutations in...

Descripción completa

Detalles Bibliográficos
Autores principales: Besio, Roberta, Gioia, Roberta, Cossu, Federica, Monzani, Enrico, Nicolis, Stefania, Cucca, Lucia, Profumo, Antonella, Casella, Luigi, Tenni, Ruggero, Bolognesi, Martino, Rossi, Antonio, Forlino, Antonella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3596340/
https://www.ncbi.nlm.nih.gov/pubmed/23516557
http://dx.doi.org/10.1371/journal.pone.0058792
_version_ 1782262496626737152
author Besio, Roberta
Gioia, Roberta
Cossu, Federica
Monzani, Enrico
Nicolis, Stefania
Cucca, Lucia
Profumo, Antonella
Casella, Luigi
Tenni, Ruggero
Bolognesi, Martino
Rossi, Antonio
Forlino, Antonella
author_facet Besio, Roberta
Gioia, Roberta
Cossu, Federica
Monzani, Enrico
Nicolis, Stefania
Cucca, Lucia
Profumo, Antonella
Casella, Luigi
Tenni, Ruggero
Bolognesi, Martino
Rossi, Antonio
Forlino, Antonella
author_sort Besio, Roberta
collection PubMed
description Prolidase is the only human enzyme responsible for the digestion of iminodipeptides containing proline or hydroxyproline at their C-terminal end, being a key player in extracellular matrix remodeling. Prolidase deficiency (PD) is an intractable loss of function disease, characterized by mutations in the prolidase gene. The exact causes of activity impairment in mutant prolidase are still unknown. We generated three recombinant prolidase forms, hRecProl-231delY, hRecProl-E412K and hRecProl-G448R, reproducing three mutations identified in homozygous PD patients. The enzymes showed very low catalytic efficiency, thermal instability and changes in protein conformation. No variation of Mn(II) cofactor affinity was detected for hRecProl-E412K; a compromised ability to bind the cofactor was found in hRecProl-231delY and Mn(II) was totally absent in hRecProl-G448R. Furthermore, local structure perturbations for all three mutants were predicted by in silico analysis. Our biochemical investigation of the three causative alleles identified in perturbed folding/instability, and in consequent partial prolidase degradation, the main reasons for enzyme inactivity. Based on the above considerations we were able to rescue part of the prolidase activity in patients’ fibroblasts through the induction of Heath Shock Proteins expression, hinting at new promising avenues for PD treatment.
format Online
Article
Text
id pubmed-3596340
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-35963402013-03-20 Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue Besio, Roberta Gioia, Roberta Cossu, Federica Monzani, Enrico Nicolis, Stefania Cucca, Lucia Profumo, Antonella Casella, Luigi Tenni, Ruggero Bolognesi, Martino Rossi, Antonio Forlino, Antonella PLoS One Research Article Prolidase is the only human enzyme responsible for the digestion of iminodipeptides containing proline or hydroxyproline at their C-terminal end, being a key player in extracellular matrix remodeling. Prolidase deficiency (PD) is an intractable loss of function disease, characterized by mutations in the prolidase gene. The exact causes of activity impairment in mutant prolidase are still unknown. We generated three recombinant prolidase forms, hRecProl-231delY, hRecProl-E412K and hRecProl-G448R, reproducing three mutations identified in homozygous PD patients. The enzymes showed very low catalytic efficiency, thermal instability and changes in protein conformation. No variation of Mn(II) cofactor affinity was detected for hRecProl-E412K; a compromised ability to bind the cofactor was found in hRecProl-231delY and Mn(II) was totally absent in hRecProl-G448R. Furthermore, local structure perturbations for all three mutants were predicted by in silico analysis. Our biochemical investigation of the three causative alleles identified in perturbed folding/instability, and in consequent partial prolidase degradation, the main reasons for enzyme inactivity. Based on the above considerations we were able to rescue part of the prolidase activity in patients’ fibroblasts through the induction of Heath Shock Proteins expression, hinting at new promising avenues for PD treatment. Public Library of Science 2013-03-13 /pmc/articles/PMC3596340/ /pubmed/23516557 http://dx.doi.org/10.1371/journal.pone.0058792 Text en © 2013 Besio et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Besio, Roberta
Gioia, Roberta
Cossu, Federica
Monzani, Enrico
Nicolis, Stefania
Cucca, Lucia
Profumo, Antonella
Casella, Luigi
Tenni, Ruggero
Bolognesi, Martino
Rossi, Antonio
Forlino, Antonella
Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue
title Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue
title_full Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue
title_fullStr Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue
title_full_unstemmed Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue
title_short Kinetic and Structural Evidences on Human Prolidase Pathological Mutants Suggest Strategies for Enzyme Functional Rescue
title_sort kinetic and structural evidences on human prolidase pathological mutants suggest strategies for enzyme functional rescue
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3596340/
https://www.ncbi.nlm.nih.gov/pubmed/23516557
http://dx.doi.org/10.1371/journal.pone.0058792
work_keys_str_mv AT besioroberta kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT gioiaroberta kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT cossufederica kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT monzanienrico kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT nicolisstefania kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT cuccalucia kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT profumoantonella kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT casellaluigi kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT tenniruggero kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT bolognesimartino kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT rossiantonio kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue
AT forlinoantonella kineticandstructuralevidencesonhumanprolidasepathologicalmutantssuggeststrategiesforenzymefunctionalrescue